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US5686727A - Ultraviolet exposure detection apparatus - Google Patents

Ultraviolet exposure detection apparatus
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US5686727A
US5686727AUS08/534,546US53454695AUS5686727AUS 5686727 AUS5686727 AUS 5686727AUS 53454695 AUS53454695 AUS 53454695AUS 5686727 AUS5686727 AUS 5686727A
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detector
ultraviolet radiation
frequency
exposure
radiation
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US08/534,546
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Arthur Reenstra
Wende Reenstra
Thomas Belletete
Curtis A. Vock
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SeeUV LLC
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SeeUV LLC
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Assigned to SEEUV, LLCreassignmentSEEUV, LLCASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: VOCK, CURTIS A., BELLETETE, THOMAS, BURAS, WENDE, REENSTRA, ARTHUR L.
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Abstract

An ultraviolet radiation detection exposure system determines either ultraviolet flux or accumulated ultraviolet energy. A detector converts the ultraviolet radiation into voltage, and a voltage-to-frequency converter provides a corresponding frequency. If the system measures flux, a conversion subsystem converts the frequency to an associated ultraviolet flux in watts. If the sensor measures ultraviolet energy over a period of time, a counter counts at the frequency of the voltage-to-frequency converter thereby integrating the received ultraviolet energy at the detector. A reset button allows the user to reset the system, clearing the counter, prior to entering the sun for the day. A warning light, display, or buzzer indicates to the user of the system that her skin is in danger of receiving a sun burn. A plurality of fibers and/or lambertian half-spheres are used to provide substantially uniform solar acceptance. A solar cell can be used to power the apparatus, especially within a watch configuration.

Description

RELATED APPLICATIONS
This is a continuation-in-part of U.S. application Ser. No. 08/314,227, filed on Sep. 28, 1994, and which is expressly incorporated herein by reference.
FIELD OF THE INVENTION
The invention relates generally to the measurement of ultraviolet radiation; and particularly to the detection and early warning of over-exposure to ultraviolet radiation.
BACKGROUND OF THE INVENTION
The dangers of ultraviolet (UV) radiation are well understood. For example, it is well known that exposure to sunlight can result in a sun burn. Although this is a common occurrence, sun burns can lead to skin cancer and ultimately death.
The degree of a sun burn depends to some extent upon an individual's skin type. Those individuals with fair skin, for example, generally burn easier than those individuals with dark complexions. Other factors also influence a person's susceptibility to sun burn, such as altitude and the blocking power of an applied sun screen lotion.
Nevertheless, all individuals risk sun burn after a certain exposure to ultraviolet radiation. Most individuals are unaware of the daily amount of UV exposure they receive; and typically seek shelter, or "cover up", only after noticing the sun burn.
Sensors for measuring ultraviolet energy are known. Such sensors could be used by those concerned individuals to gauge their exposure to ultraviolet solar radiation. However, accurate sensors are typically expensive and/or bulky to carry around by the ordinary individual.
It is, accordingly, an object of the invention to provide a compact ultraviolet sensor which is easily carried by an individual.
Another object of the invention is to provide an ultraviolet sensor which warns an individual when a preselected exposure to ultraviolet energy has been reached.
These and other objects of the invention will become apparent in the description which follows.
SUMMARY OF THE INVENTION
The invention provides, in one aspect, a system for determining an individual's accumulated exposure to ultraviolet radiation. A detector senses ultraviolet radiation and produces a voltage proportionate to the radiation. A voltage-to-frequency converter converts the voltage to a corresponding frequency, and a counter counts at the frequency. An indication module, e.g., a LCD display, a LED or piezoelectric buzzer, communicates to a user of the system that the counter has reached a particular preselected value. This value is representative of accumulated UV exposure.
A reset switch resets the counter to a zero value so that a user can initialize the system selectively.
Preferably, the system includes a wrist-watch such that the detector, converter, counter and associated interconnections are arranged substantially within the wrist-watch. The indication module, e.g., a LCD display, remains visible to a wearer of the wrist-watch so that she is aware of the exposure level. A typical watch battery provides the energy for the watch and for the detector, counter, and converter.
In a preferred aspect, the watch includes a LCD display and a toggle button. This display provides the time-of-day; and further provides a value of accumulated UV exposure when the toggle button is pressed.
In other aspects, the indication module includes a LCD display, and the system includes a conversion subsystem to convert a count value into UV energy. That is, the conversion module calibrates information from the counter into actual UV energy, e.g., ergs or joules; and the display communicates this actual energy to the user.
In yet another aspect, a filter is included to selectively alter the spectrum of the ultraviolet radiation incident upon the detector. In addition, since the detector has its own spectral response characterization, such a filter can compensate for this spectral response characterization selectively.
The invention also provides, in another aspect, a system for determining ultraviolet radiation flux. As above, a detector senses ultraviolet radiation and produces a voltage proportionate to the radiation. A voltage-to-frequency converter converts the voltage to a corresponding frequency, and an indication module communicates a value corresponding to the frequency to a user of the system. In this manner, a user of the system receives UV flux information, e.g., watts, as opposed to UV exposure, or integrated UV energy.
Such a system in this aspect thus preferably includes a conversion module for converting the frequency into watts.
The invention also provides a method for determining ultraviolet radiation exposure and for communicating that exposure to an individual, including the steps of: (i) sensing ultraviolet radiation and producing a voltage proportionate to the radiation; (ii) converting the voltage to a corresponding frequency; (iii) counting at the frequency; and (iv) communicating at least an indication of a value counted to the individual.
In other aspects, the method includes the steps of storing a count from one day and continue counting from that stored count on a following day. The method also preferably includes the step of warning the individual when the counted-to value reaches a preselected level.
The invention can also include one or more lambertian-like half-spheres, each of the half-spheres providing a more uniform solar acceptance to solar energy impinging onto the detector. Further, a plurality of UV-transmitting fibers can be used with the half-spheres, each of the fibers relaying energy scattered from within the half-sphere to the detector.
In another aspect, the invention provides a plurality of UV-transmitting fibers, the fibers arranged to receive solar radiation at differing angles relative to a surface normal of the detector, the fibers providing a more uniform solar acceptance to solar energy impinging onto the apparatus.
In yet another aspect, the invention includes a wrist-watch, where the detector, energy-to-frequency converter, counter and indicator are arranged substantially within the wrist-watch such that the indicator is visible to a wearer of said wrist-watch along a viewing axis. A plurality of UV-transmitting fibers are arranged to receive solar radiation at differing angles relative to the viewing axis, whereby the fibers provide a more uniform solar acceptance to solar energy impinging onto the apparatus.
In a preferred aspect, a solar cell is used and connected to view the ultraviolet radiation and to power the apparatus.
The invention is next described further in connection with preferred embodiments, and it will be apparent that various additions, subtractions, and modifications can be made by those skilled in the art without departing from the scope of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
A more complete understanding of the invention may be obtained by reference to the drawings, in which:
FIG. 1 shows a schematic view of a sun exposure detection system constructed according to the invention;
FIG. 1A illustrates a wrist-watch according to the invention which incorporates the system of FIG. 1;
FIG. 1B illustrates a wrist-watch according to the invention which incorporates the system of FIG. 1;
FIG. 2 shows a schematic diagram of a sun exposure detection circuit suitable for use in the system of FIG. 1;
FIG. 3 shows a schematic diagram of an alternative sun exposure detection circuit suitable for use in the system of FIG. 1;
FIG. 4 shows a schematic view of a UV measurement system constructed according to the invention;
FIG. 5 shows a schematic view of an alternative sun exposure detection system constructed according to the invention;
FIG. 6 illustrates a watch face, constructed according to the invention, which includes lambertian-like half-spheres to provide a substantially uniform solar acceptance for differing angles to the sun;
FIG. 6A shows a cross-sectional of the watch of FIG. 6;
FIG. 7 illustrates another watch face, constructed according to the invention, which includes a plurality of UV-transmitting fibers to provide a substantially uniform solar acceptance for differing angles to the sun;
FIG. 7A shows a cross-sectional view of the watch face of FIG. 7;
FIG. 7B illustrates a close-up and cross-sectional view of one portion of the watch of FIG. 7 and which includes a plurality of UV fibers connected to a UV sensor;
FIG. 8 shows one lambertian half-sphere constructed according to the invention and which is modified to alter the transmission of UV light as a function of angle to the half-sphere;
FIG. 8A shows a side-view of the half-sphere of FIG. 8; and
FIG. 9 shows a schematic view of a sun exposure detection system constructed according to the invention, and which includes a solar cell to provide power to system.
DETAILED DESCRIPTION OF ILLUSTRATED EMBODIMENTS
FIG. 1 illustrates a sunexposure detection system 10 constructed according to the invention. Thesystem 10 includes adetector sensor 12, a voltage-to-frequency converter 14, acounter 16, and adisplay 18. A push-button reset 20 is used to reset thesystem 10.
Thesystem 10 operates to inform a user about her accumulated exposure toultraviolet radiation 19. Thedetector 12 senses and converts ultraviolet radiation to voltage, and communicates that voltage to the voltage-to-frequency converter 14. Theconverter 14 connects to thecounter 16 which counts at the frequency indicated by theconverter 14. Accordingly, thecounter 16 integrates the amount ofenergy 19 received at thedetector 12 over a period of time.
This period of time is initiated by the user of thesystem 10. The user resets thereset button 20 each time she goes into the sun. This resets the counter to zero so that a running total of accumulatedultraviolet energy 19 may be determined. The user monitors thedisplay 18 from time-to-time to assess whether she has been exposed to an excessive amount ofultraviolet energy 19.
In the preferred embodiment of the invention, thedisplay 18 includes a conversion subsystem to convert a count value from thecounter 16 to an actual accumulated UV exposure energy, e.g., in ergs or joules, which is then shown on thedisplay 18. Such a conversion subsystem should be calibrated in order to provide the correct UV energy for a particular count value.
The particular value on thedisplay 18 that a user associates with "excessive" UV exposure is determined by experimentation. For example, once a user goes into the sun and receives a sun burn, that user knows, by looking at thedisplay 18, what amount of ultraviolet energy causes a sun-burn for his or her skin type. That user thereafter knows to leave the sun, or to cover-up, when thedisplay 18 shows a value which approaches their critical UV exposure amount.
In accord with the invention, thesystem 10 is preferably incorporated into a watch and attached to the user's wrist in the normal way. FIG. 1A shows such awatch 30. Thewatch 30 is like other watches in that it has awrist band 32, a digital time read-out display 34, acalendar 36, and a clock/calendar adjustment knob 38.System 10 of FIG. 1 is incorporated within thewatch section 40, and is selectively operable by the user by pressing the UV read-out button 42. Thedisplay 34 thus provides the time of day, or, alternatively, the read-out of accumulated ultraviolet exposure when the user toggles thebutton 42. A reset button 44 operates as thereset button 20 of FIG. 1 to initiate the integration of UV energy when the user enters the sunlight for the first time during a particular day.
Those skilled in the art will appreciate that other features may be incorporated into thewatch 30, such as a night light, pressure gauge, and waterproofing. Further, and without limitation, theknob 38 can incorporate the features of thebutton 42 and/or button 44 as a matter of design choice.
Thesystem 10 of FIG. 1 fits within the dimensions of the typical wrist-watch section 40. Thedetector sensor 12 is a solid state device such as the Hamamatsu G3614-01 semiconductor UV sensor. Theconverter 14 is, likewise, a solid state device such as the 555 microchip. Thecounter 16 is, for example, the ICM7224 microchip. Thedisplay 18 of FIG. 1, or thedisplay 34 of FIG. 2, is preferably a commonly available liquid crystal display (LCD). A small battery (not shown) provides the power for thewatch 30; or a solar power cell may alternatively provide some or all of the energy for thesystem 10.
Thedetector 12, FIG. 1, preferably responds to the ultraviolet radiation which induces sun burn, for example, in the wavelength range of 250 to 400 nanometers. However, it may be desirable in some instances to filter certain parts of this UV spectrum to more closely represent the response characteristics of the human skin. Therefore, FIG. 1 shows aUV filter 50 which can be used in certain aspects of the invention to modify the UV spectrum integrated by thesystem 10. In addition, thefilter 50 can be used to compensate for the detector response characteristics to effectively null the non-linear spectral response characteristics of thedetector 12.
Accordingly, afilter 50 may be incorporated into thewatch face 60 of FIG. 1A. Such a filter is developed by applying a multi-layer UV coating onto a visible and UV transmitting substrate, e.g., glass, that forms thewatch face 60.
FIG. 1B shows analternative watch 70 in accord with the invention. As before, thewatch 70 has a band 32', a calendar read-out 36', and a time/calendar adjustment knob 38'. However, the time-read out display 34' is separate and distinct from the display 18' which indicates accumulated UV exposure. The reset button 20' is pressed by the user prior to sun exposure to begin the integration of UV energy. In the illustrated embodiment of FIG. 1B, the accumulated UV exposure is always conveniently displayed.
One advantage of the invention is that it draws almost negligible power. Thesensor 12 of FIG. 1 provides its own power through the conversion of solar energy into a signal. The rest of the components--14, 16 and 18 of FIG. 1--are easily connected as integrated circuits to within the circuitry of existing digital watches. Therefore, the invention provides practically no power drain; and when used within a watch, the battery life is not significantly diminished by incorporating the invention together with normal and prior art watch features, such as a calculator, display lights, and the digital display.
FIG. 2 illustrates one preferred embodiment of an electrical circuit 80 suitable for constructing thesystem 10 of FIG. 1. The circuit 80 integratesultraviolet radiation 81 over time and displays the total UV energy on thedisplay 98. TheUV sensing detector 84 is the Hamamatsu G3614-01 ultra-small UV GaAsP photodiode sensor chip with an integrated UV filter, e.g., thefilter 50 of FIG. 1. With the filter, thedetector 84 has a non-zero response between 260 and 320 nanometers which is converted into a proportional current at a rate of 10 mA/watt at the peak wavelength of 290 nanometers. This current passes throughresistor 86 and charges capacitor 88 at a rate that is determined by the current from thephotodiode detector 84.
When the voltage acrosscapacitor 88 reaches a certain threshold, the output of the voltage-to-frequency converter microchip 90 is pulsed low. Themicrochip 90 will internally dischargecapacitor 88 throughresistor 86 and then release thecapacitor 88 so that it can be recharged by thedetector 84.Resistor 86 is relatively small so that the pulse width remains narrow.
The output frequency of theconverter microchip 90 is approximately 0.6*Idiode/C1, where Idiode is the current from thedetector 84 and where C1 is the value of thecapacitor 88. The value of C1 is chosen to yield the desired sensitivity of the system 80.
Capacitor 92 is a power supply bypass to reduce noise; andcapacitor 94 stabilizes the internal threshold of theconverter microchip 90. The output pulse train from theconverter microchip 90 is attached to the count input of thecounter microchip 96, which is the ICM87224.
Thecounter microchip 96 is a 4.5 digit LCD counter display chip which includes an internal counter and the logic required to drive theLCD display 98, which is the Varitronix VI-502-DP-RC-S. The outputs of the display driver portion of thecounter microchip 96 are tied directly to the 4.5digit LCD display 98.
Anexternal reset switch 100, e.g., similar to thereset button 20 of FIG. 1, is provided to reset the internal counters of thecounter microchip 96. Momentarily depressing theswitch 100 will pull the reset input low and clear the counters of thecounter microchip 96 and blank thedisplay 98. Once theswitch 100 is released, thecounter microchip 96 will begin to accumulate, i.e., "count", the total exposure to the ultraviolet radiation within the pass-band of thedetector 84.
Capacitor 102 is a power supply bypass cap to reduce noise; andresistor 104 is a pull-up resistor for the reset line.Resistor 106 and a fivevolt zener diode 108 are included to generate a positive five volt supply from a ninevolt battery 110. Capacitor 112 further stabilizes the five volt line.
Those skilled in the art will appreciate that the circuit 80 illustrated in FIG. 2 is also constructed as a single semiconductor element, e.g., a custom integrated circuit. Further, those in the art can appreciate that other commercial solid state devices can be used to replace one or more of the illustratedmicrochips 90, 96, 98 without departing from the scope of the invention; and that the associated interconnections change to accommodate the replacement(s).
FIG. 3 shows acircuit 120 constructed according to the invention. Such acircuit 120 is similar to the circuit 80 of FIG. 2, but, for example, does not include adisplay 98. Thecircuit 120 also provides three settings for skin type and anaudible alarm 122 which warns the user that a preselected exposure limit is attained.
As above,circuit 120 is preferably incorporated into a watch such as shown in FIG. 1A. Other features such as a stop watch and time alarm may be included as a matter of design choice.
Circuit 120 utilizes the Hammamatsu G3614-01UV sensor 124 with an integrated UV filter (not shown), which transmitsUV radiation 126 within the range 260 to 320 nanometers. ThisUV radiation 126 is converted to a proportional current which chargescapacitor 130 throughresistor 132, and which is converted to a proportional frequency by the current-to-frequency converter 128, here shown as the LM556. The pin5 output of theconverter microchip 128 is a pulse train which drives aCMOS 14stage counter microchip 134.
Theconverter microchip 128 is also used to establish an astable oscillator with a frequency of 480 Hz. The oscillator is held reset until the selected safe exposure limit is reached, sounding thepiezoelectric buzzer 122. The skin type selection is done by momentarily depressingreset switch 136; and repeatedly depressing theswitch 136 to cycle through the preselected skin type settings. The selected level of exposure is indicated by a two-color LED 138: green indicates dark skin complexion, red indicates average skin complexion, and no illumination indicates fair skin.
Resistors 140, 142 in combination withcapacitor 144 act to debounce theinput switch 136. Setting the skin type also resets theintegration counter 134 to zero. The fourteenstage counter 134 will count the number of pulses from the current-to-frequency converter microchip 128 until the selected skin type counter value is met. At this point, eitherFET 146, 148, or 150 will turn on and disable further counting by thecounter microchip 134. FET 146 acts as an inverter and releases the 480 Hz buzzer driver signal. Thebuzzer 122 will sound until thereset switch 136 is pushed.
TheCapacitor 130, together with appropriate counter taps, are adjusted to modify the skin type settings.
Those skilled in the art can appreciate that the illustrated components withincircuit 120 are preferably replaced with surface mount packaging. Such packaging permits a form-factor such as a watch configuration of FIGS. 1A and 1B.
Further, those skilled in the art will appreciate that other warning sensors can replace thepiezoelectric buzzer 122. For example, a tactile sensor or a visual light emitting diode (LED) can also be used in place of thepiezoelectric buzzer 122 to warn the user of the system that a skin exposure level has been reached.
FIG. 4 illustrates a UVradiation measurement system 150 constructed according to the invention. As in FIG. 1,system 150 includes aUV detector sensor 152 which detects UV radiation and which converts that radiation into a proportional voltage. The voltage-to-frequency converter 154 converts the proportional voltage into a frequency that is indicative of the UV radiation flux, or watts, within the detector pass-band. Aconversion module 156 converts the frequency of the voltage-to-frequency converter to a calibrated value of actual watts for display on thedisplay 160. In this manner, incident UV radiation within the detector pass-band is measured at a given moment in time, rather than integrated over time as insystem 10 of FIG. 1.
This is beneficial for several reasons. By including a known narrowband filter with thedetector sensor 152, a measurable flux incident upon thesystem 150 is known in the selected passband of that filter. Another filter is then used to measure yet another spectral band.Multiple systems 150 may be operated together to provide a scientific UV measuring instrument over a broad spectrum. Alternatively, thedetector 152 is selected with a broad UV passband; and differing filters passed in front of thedetector 152 to provide the flux measurements over the broader spectrum.
FIG. 5 illustrates asystem 200 constructed according to the invention. Like thesystem 10 of FIG. 1,system 200 is arranged within a wrist-watch, here shown asoutline 202. Adetector 204 detects and converts UV radiation into a proportional voltage. This voltage is converted to a proportional frequency by the voltage-to-frequency converter 206. Acounter 208 counts at the frequency of theconverter 206 and anindication module 210 provides an indication of a value of thecounter 208; and abattery 211 provides energy to thesystem 200. For example, the indication module is preferably a LCD display, although a LED or piezoelectric warning mechanism is also appropriate according to the invention.
Areset switch 212 provides a user of the system with a mechanism (i) to reset thecounter 208, or, alternatively, (ii) to continue integrating UV radiation from a previous day. Amemory module 214 connects to thecounter 208 and stores a daily value from thecounter 208 until at least two days after an initial large exposure to UV radiation. Acomputational module 216 determines whether the accumulated UV energy from the past two days approaches to within 50% of an individual's preselected skin UV exposure limit. If the value is near to the limit, a small compensation is made to the value and the compensated value is initiated at thecounter 208 at the start of the following day. In this manner, a user who receives a relatively large dose of sunlight in one day--but is not burned--will be warned about the possibility of burn earlier in the following day because thecounter 208 starts with a non-zero value.
In operation, a user on a first day enters the sun, presses theswitch 212, and thewatch 202 accumulates UV energy. Provided that a preselected maximum daily exposure value is not reached--i.e., provided that thecounter 208 does not reach a value corresponding to a preselected exposure setting within thesystem 200--thememory 214 andcomputational module 216 operate to store the value until the following day. This is facilitated by a user pressing theswitch 212 to deactivate the counter 288. Alternatively, thesystem 200 keeps integrating UV energy through the night. In either event, when the user next presses the switch at the beginning of the following day, themodule 216 warns the user via theindication module 210 that she is near to the exposure limit. If a user then does nothing, thewatch 202 tacks on additional UV energy for the current day onto the stored values from the previous day. Alternatively, the user resets thecounter 208 by pressing theswitch 212, thereby starting anew.
FIG. 6 illustrates awatch face 220 constructed according to the invention. The watch hands 221 and cover 221a are shown for illustrative purposes only. Specifically, theface 220 includes a plurality of lambertian-like half spheres 222a, 222b, 222c, 222d mounted to thewatch face 220. These lambertian-like half spheres provide a more uniform acceptance to solar energy impinging on thewatch face 220.
The operation of the spheres is better understood with reference to FIG. 1. In FIG. 1, theradiation 19 appears to have a decreased signal strength depending upon the angle of incidence, relative to the surface normal, onto the filter 50 (or equivalently onto the detector 12). This decreased energy is well understood to be caused by two separate phenomenon: first, the apparent area of the detector element's active surface decreases away from the surface normal, causing a cosine fall-off in energy; and second, the detector surface is less sensitive to photons striking the surface from off-normal angles.
The net effect of these phenomena is to decrease the sensitivity of thesystem 10 for off-normal solar angles. Therefore, and with reference to FIG. 1A, when thewatch 30 is not angled directly at the sun, there is a reduced signal strength recognized by thesystem 10, causing a loss of sensitivity and accuracy.
The addition of the half-spheres 222 of FIG. 6 reduces these problems by providing an angled acceptance to solar energy. A "lambertian" surface is by definition one which appears to exhibit uniform radiance from any viewing angle. An approximate lambertian half-sphere can be made from UV-transmitting glass formed into a sphere. The glass of the sphere is ground so that the surface is randomly rough in comparison to UV wavelengths; and then the sphere is cut in half. Thus, when solar energy hits the half sphere, from any angle, the UV solar energy scatters to within the sphere and that energy is picked up by the detector, such as described below.
FIG. 6A is a cross-sectional view of thewatch face 220 and shows thehalf spheres 222a and 222c in an axis perpendicular to the one illustrated in FIG. 6. Each of thespheres 222 have a plurality of UV-transmitting fibers 223 connected to theflat portion 224 of the sphere; and these fibers 223 relay the energy scattered from within the sphere to theUV detector 225, e.g., similar to thedetector 12 of FIG. 1. In this manner, thewatch face 220 provides a more uniform acceptance signal for UV energy striking the watch from the variety of positions from which the user my place the watch relative to the sun. For illustrative purposes, the remainder of thesystem 10 of FIG. 1 is not shown in FIGS. 6 and 6A.
Those skilled in the art will understand that thewatch face 220 can operate without thedetector 225 when the detector is placed directly under one of the half-spheres 222. The purpose of the fibers 223 is to spatially relay the energy from the half-sphere 222 to the detector. Further, a plurality of detectors can be placed under each half-sphere, or a single half-sphere and detector can be used. In either case, the combination of a half-sphere and detector provides a more uniform solar acceptance, and hence sensitivity, to UV light.
Thespheres 222a and 222c of FIG. 6A have an acceptance area equal to one-half that of the spheres of FIG. 6, since the spheres appear circular in FIG. 6 and they appear half-spherical in FIG. 6A. Accordingly, there will be an energy fall off when the sun views thewatch 220 from the side, such as shown in FIG. 6A. The other two spheres, 222b, 222d also provide input to theUV detector 224, and their combined acceptance is approximately equal to one-half that of the acceptance of the spheres in a top view, such as in FIG. 6. Therefore, thespheres 222 of FIGS. 6, 6A are preferably coated or otherwise masked to reduce the UV transmission directly at the top of the sphere, such as illustrated in FIGS. 8 and 8A.
In FIG. 8, one half-sphere 222' is illustrated with a plurality of concentric coatings ormasks 226a, 226b, and 226c. FIG. 8A illustrates a side view of the half-sphere of FIG. 8. The purpose of these coatings is to modify the acceptance characteristics of the energy scattered to within the sphere--and hence detected by the detector--so that the transmitted energy is approximately equal regardless of whether the sun directly illuminates the top of the sphere--such as in FIG. 8--or the side of the half-sphere, such as in FIG. 8A. In this manner, a more uniform solar acceptance is achieved.
FIG. 7 shows anwatch face 230 illustrating an alternative embodiment of the invention. Again, the watch hands 221 and cover 221a are shown for illustrative purposes only. In FIG. 7, the half-spheres shown in FIG. 6 are removed and a plurality of UV-transmittingfibers 231 are arranged around thewatch rim 232 so that UV energy is picked up from a variety of incidence angles, relative to the surface normal to the watch face.
FIG. 7A shows a cross-sectional view of theface 230. Each of thefibers 231 connect to theUV detector 232, e.g., thedetector 12 of FIG. 1. A filter (not illustrated) can be placed between thefibers 231 and thedetector 232.
As above, thewatch face 230 provides a more uniform acceptance and sensitivity to UV radiation impinging on thewatch 230. FIG. 7B schematically illustrates oneportion 234 of thewatch 230 where a plurality offibers 231 are arranged to view a wider field of view than a single fiber can. For example, the numerical aperture of fiber 231a (denoted as N.A.1) is directed to achieve a field of view that is different than the numerical aperture of fiber 231b (denoted as N.A.2). The combined acceptance field of view of the fibers 231a, 231b is greater than either fiber alone. Accordingly, in combination with all of thefibers 231, a wide angle acceptance to the sun is achieved.
FIG. 9 shows asystem 240 constructed according to the invention. Preferably, thesystem 240 is arranged within anouter body 241 such as the watch of FIG. 1A. Thesystem 240 includes many of the elements of FIG. 1, including thedetector sensor 242, which is similar to thedetector 12. An energy tofrequency converter 243 is also similar to the voltage-to-frequency converter 14 of FIG. 1; although those skilled in the art will appreciate that a current to frequency converter or intensity to frequency converter may alternatively be used, depending on the operation of thedetector 242. As in FIG. 1, afilter 50 can be used to filter the UV light. Acounter 244 counts at the frequency of the output of theelement 243, much the way thecounter 16 of FIG. 1 operates; and adisplay 245 provides a visual output of thesystem 240.
System 240 also includes asolar energy cell 250, which converts solar energy to power, to power the circuit represented by theelements 242, 243, 244 and 245. This removes the need for thebattery element 20 of FIG. 1; or it enhances the battery's life, which is still useful to provide power to store digital values during non-illuminated activities.
The invention thus attains the objects set forth above, in addition to those apparent from preceding description. Since certain changes may be made in the above ultraviolet exposure detection apparatus without departing from the scope of the invention, it is intended that all matter contained in the above description or shown in the accompanying drawing be interpreted as illustrative and not in a limiting sense.
It is also to be understood that the following claims are to cover all generic and specific features of the invention described herein, and all statements of the scope of the invention which, as a matter of language, might be the to fall there between.

Claims (7)

Having described the invention, what is claimed as new and secured by Letters Patent is:
1. Apparatus for determining the accumulated exposure to ultraviolet radiation, comprising:
detector means for sensing ultraviolet radiation and for producing a signal proportionate to the radiation;
energy-to-frequency converter means for converting the signal to a corresponding frequency;
counter means for counting at the frequency;
wide angle means for providing substantially uniform acceptance to solar energy impinging onto the detector means from different angular directions, the wide angle means having one or more lambertian-like half-spheres formed of solid UV transmitting glass; and
indication means for communicating at least an indication of a value counted to by the counter means to a user of the apparatus.
2. Apparatus according to claim 1, further comprising a plurality of UV-transmitting fibers, each of the fibers being constructed and arranged so as to relay energy scattered from within the lambertian half-spheres to the detector means.
3. A method for determining ultraviolet radiation exposure and for communicating that exposure to an individual, comprising the steps of:
sensing ultraviolet radiation in a manner which increases sensitivity to ultraviolet radiation for non-normal solar incidence angles, relative to a UV detector, and for producing a signal proportionate to the radiation, the step of sensing including sensing the radiation through one or more lambertian-like half spheres formed of solid UV-transmitting glass to provide substantially uniform angular acceptance to solar energy impinging on the detector;
converting the signal to a corresponding frequency;
counting at the frequency and converting the frequency to ultraviolet radiation exposure: and
communicating the exposure to the individual.
4. A method according to claim 3, further comprising the step of sensing the ultraviolet radiation through a plurality of UV-transmitting fibers, each of the fibers relaying energy scattered from within the half-spheres to the detector.
5. A method for determining ultraviolet radiation exposure and for communicating that exposure to an individual, comprising the steps of:
sensing ultraviolet radiation in a manner which increases sensitivity to ultraviolet radiation for non-normal solar incidence angles, relative to a UV detector, and for producing a signal proportionate to the radiation, the step of sensing including sensing the ultraviolet radiation through a plurality of UV-transmitting fibers, the fibers arranged in an annular pattern to receive solar radiation at differing angles relative to a surface normal of the UV detector;
converting the signal to a corresponding frequency;
counting at the frequency and converting the frequency to ultraviolet radiation exposure; and
communicating the exposure to the individual.
6. Apparatus for determining the accumulated exposure to ultraviolet radiation, comprising:
detector means for sensing ultraviolet radiation and for producing a signal proportionate to the radiation;
energy-to-frequency converter means for converting the signal to a corresponding frequency;
counter means for counting at the frequency;
wide angle means for providing substantially uniform acceptance to solar energy impinging onto the detector means from different angular directions, the wide angle means having a plurality of UV-transmitting fibers constructed and arranged into an annular pattern so as to receive solar radiation at differing angles relative to a surface normal of the detector means and such that the fibers do not obstruct a central region within the annular pattern; and
indication means for communicating at least an indication of a value counted to by said counter means to a user of the apparatus.
7. Apparatus for determining the accumulated exposure to ultraviolet radiation, comprising:
detector means for sensing ultraviolet radiation and for producing a signal proportionate to the radiation;
energy-to-frequency converter means for converting the signal to a corresponding frequency;
counter means for counting at the frequency;
wide angle means for providing substantially uniform acceptance to solar energy impinging onto the detector means from different angular directions, the wide angle means having (a) four lambertian half spheres constructed and arranged to cover different locations around a watch face and (b) a plurality of UV transmitting fibers connected between each of the spheres and the detector means to communicate UV energy therethrough; and
indication means for communicating at least an indication of a value counted to by said counter means to a user of the apparatus.
US08/534,5461994-09-281995-09-27Ultraviolet exposure detection apparatusExpired - Fee RelatedUS5686727A (en)

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US08/534,546US5686727A (en)1994-09-281995-09-27Ultraviolet exposure detection apparatus

Applications Claiming Priority (2)

Application NumberPriority DateFiling DateTitle
US31422794A1994-09-281994-09-28
US08/534,546US5686727A (en)1994-09-281995-09-27Ultraviolet exposure detection apparatus

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Application NumberTitlePriority DateFiling Date
US31422794AContinuation-In-Part1994-09-281994-09-28

Publications (1)

Publication NumberPublication Date
US5686727Atrue US5686727A (en)1997-11-11

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Cited By (55)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
WO2001018510A1 (en)*1999-09-022001-03-15Andreas NuskeDigital uv-dosimeter wristwatch
US20010048081A1 (en)*2000-05-102001-12-06Fuji Xerox Co., LtdPortable information device
US6392239B1 (en)1996-12-302002-05-21Jan KuklinskiOptical array converting UV radiation
US6464405B2 (en)*1999-10-142002-10-15Ocean Design, Inc.Wet-mateable electro-optical connector
US6484932B1 (en)1999-04-092002-11-26John P. KinneyMethod and apparatus for communicating ultraviolet (UV) radiation information
US20030150998A1 (en)*2000-04-282003-08-14Minseub ShinDevice and method for ultraviolet radiation monitoring
US20030230725A1 (en)*2002-01-302003-12-18Bravo WongSensor arrangement having a capacitive light sensing circuit
US20040021085A1 (en)*2002-07-302004-02-05Prince Chad J.Semiconductor photodiode with integrated microporous filter
US20040155199A1 (en)*2003-01-242004-08-12Wen-Wei SuMobile UV-intensity indicator and use thereof
US20040155172A1 (en)*2003-02-062004-08-12Anuthep Benja-AthonCompact vitamin d-production monitor
EP1500914A1 (en)*2003-07-232005-01-26L'orealDevice for preventing risks of overexposure to harmful solar radiation
US20050067580A1 (en)*2003-07-232005-03-31L'orealDevice to prevent the risk of overexposure to harmful solar radiation
US20050242290A1 (en)*2004-04-302005-11-03May Joe TDistributed UV sensor system and method
US20050248717A1 (en)*2003-10-092005-11-10Howell Thomas AEyeglasses with hearing enhanced and other audio signal-generating capabilities
US20050248719A1 (en)*2003-10-092005-11-10Howell Thomas AEvent eyeglasses
US20050264752A1 (en)*2003-10-092005-12-01Howell Thomas AEyewear supporting after-market electrical components
US20060023158A1 (en)*2003-10-092006-02-02Howell Thomas AEyeglasses with electrical components
WO2006114009A1 (en)*2005-04-282006-11-02Flytec AgUv-measuring device
US20070046887A1 (en)*2003-10-092007-03-01Howell Thomas AEyewear supporting after-market electrical components
US20070186330A1 (en)*2004-04-152007-08-16Howell Thomas AHat with a radiation sensor
US7438410B1 (en)2003-10-092008-10-21Ip Venture, Inc.Tethered electrical components for eyeglasses
US7500746B1 (en)2004-04-152009-03-10Ip Venture, Inc.Eyewear with radiation detection system
US7543934B2 (en)2006-09-202009-06-09Ipventures, Inc.Eyeglasses with activity monitoring and acoustic dampening
US20090249126A1 (en)*2008-03-252009-10-01Hong Fu Jin Precision Industry (Shen Zhen) Co., Ltd.Testing device for usb i/o board
US7677723B2 (en)2003-10-092010-03-16Ipventure, Inc.Eyeglasses with a heart rate monitor
US20100163750A1 (en)*2008-12-312010-07-01Hunwick Iii Bernard BArticle with gradated environmental sensor
US20100163749A1 (en)*2008-12-312010-07-01Hunwick Iii Bernard BBottle with environmental sensor
US7792552B2 (en)2003-04-152010-09-07Ipventure, Inc.Eyeglasses for wireless communications
US7806525B2 (en)2003-10-092010-10-05Ipventure, Inc.Eyeglasses having a camera
US8109629B2 (en)2003-10-092012-02-07Ipventure, Inc.Eyewear supporting electrical components and apparatus therefor
US8337013B2 (en)2004-07-282012-12-25Ipventure, Inc.Eyeglasses with RFID tags or with a strap
US8465151B2 (en)2003-04-152013-06-18Ipventure, Inc.Eyewear with multi-part temple for supporting one or more electrical components
US20140061486A1 (en)*2012-02-212014-03-06Massachusetts Institute Of TechnologySpectrometer Devices
US8897100B2 (en)2011-05-312014-11-25Triple Threat Enterprises, LlcElectronic timer/sensor to protect skin from overexposure to UV radiation
US20150083934A1 (en)*2012-04-112015-03-26Skinplan AbDevice and method for determination of safe tanning time
US9316533B2 (en)2014-08-272016-04-19ECD Holding Company, LLCUltraviolet monitoring device
US9405135B2 (en)2011-09-152016-08-02Ipventure, Inc.Shutter eyewear
US20160313176A1 (en)*2015-04-212016-10-27Salutron, Inc.User-wearable devices including uv light exposure detector with calibration for skin tone
US10042186B2 (en)2013-03-152018-08-07Ipventure, Inc.Electronic eyewear and display
US10310296B2 (en)2003-10-092019-06-04Ingeniospec, LlcEyewear with printed circuit board
US10345625B2 (en)2003-10-092019-07-09Ingeniospec, LlcEyewear with touch-sensitive input surface
US20190212270A1 (en)*2018-01-102019-07-11Michael KerwinContainer with luminescent sunscreen and closure with illuminator
US10624790B2 (en)2011-09-152020-04-21Ipventure, Inc.Electronic eyewear therapy
US10737970B2 (en)2013-04-152020-08-11Vitro Flat Glass LlcLow iron, high redox ratio, and high iron, high redox ratio, soda-lime-silica glasses and methods of making same
US10777048B2 (en)2018-04-122020-09-15Ipventure, Inc.Methods and apparatus regarding electronic eyewear applicable for seniors
US11513371B2 (en)2003-10-092022-11-29Ingeniospec, LlcEyewear with printed circuit board supporting messages
US11630331B2 (en)2003-10-092023-04-18Ingeniospec, LlcEyewear with touch-sensitive input surface
US11644693B2 (en)2004-07-282023-05-09Ingeniospec, LlcWearable audio system supporting enhanced hearing support
US11733549B2 (en)2005-10-112023-08-22Ingeniospec, LlcEyewear having removable temples that support electrical components
US20230280207A1 (en)*2022-03-042023-09-07Central Garden & Pet CompanyPhotochromic pigment detection to determine uv output intensity of a uv illuminating source within a reptile cage
US11829518B1 (en)2004-07-282023-11-28Ingeniospec, LlcHead-worn device with connection region
US11852901B2 (en)2004-10-122023-12-26Ingeniospec, LlcWireless headset supporting messages and hearing enhancement
US11899164B1 (en)*2022-11-152024-02-13Jason NeySolar powered digital harvest days counter
US12044901B2 (en)2005-10-112024-07-23Ingeniospec, LlcSystem for charging embedded battery in wireless head-worn personal electronic apparatus
US12365616B2 (en)2020-02-032025-07-22Vitro Flat Glass LlcSoda lime silica glass with high visible light transmittance

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
NL1023984C2 (en)*2003-07-232005-01-25Medavinci Dev B VSunburn alarm system, includes screen for partly shielding light sensor from light in order to simulate different skin types
EP1659379B1 (en)2004-11-112009-08-26STMicroelectronics (Research & Development) LimitedLight monitor
US8044363B2 (en)2007-04-302011-10-25Kimberly-Clark Worldwide, Inc.UV detection devices and methods

Citations (8)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4428050A (en)*1981-04-021984-01-24Frank PellegrinoTanning aid
JPS6254128A (en)*1985-09-031987-03-09Seiko Epson CorpSimple ultraviolet ray intensity detector
JPS6418028A (en)*1987-07-141989-01-20Yamatake Honeywell Co LtdSolar bath sensor
US4962910A (en)*1988-03-141990-10-16Casio Computer Co., Ltd.Device for use to prevent human skin from excessive sunburns
US4985632A (en)*1989-05-311991-01-15Elexis CorporationSuntan indicator
US5008548A (en)*1989-08-011991-04-16Nahum GatPersonal UV radiometer
SU1753302A1 (en)*1990-06-071992-08-07Ленинградский Институт Точной Механики И ОптикиOptic radiation sensor
US5331168A (en)*1992-02-191994-07-19Beaubien David JReference grade solar ultraviolet band pyranometer

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4704535A (en)*1985-04-111987-11-03Teledyne Industries, Inc.Ultraviolet dosimetry

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4428050A (en)*1981-04-021984-01-24Frank PellegrinoTanning aid
JPS6254128A (en)*1985-09-031987-03-09Seiko Epson CorpSimple ultraviolet ray intensity detector
JPS6418028A (en)*1987-07-141989-01-20Yamatake Honeywell Co LtdSolar bath sensor
US4962910A (en)*1988-03-141990-10-16Casio Computer Co., Ltd.Device for use to prevent human skin from excessive sunburns
US4985632A (en)*1989-05-311991-01-15Elexis CorporationSuntan indicator
US5008548A (en)*1989-08-011991-04-16Nahum GatPersonal UV radiometer
SU1753302A1 (en)*1990-06-071992-08-07Ленинградский Институт Точной Механики И ОптикиOptic radiation sensor
US5331168A (en)*1992-02-191994-07-19Beaubien David JReference grade solar ultraviolet band pyranometer

Non-Patent Citations (4)

* Cited by examiner, † Cited by third party
Title
Hoyt S. Scott, "Measurements of Erythemal Energy." AIEE Technical Paper 49-186 (Jul. 1949) title page and pp. 1-9.
Hoyt S. Scott, Measurements of Erythemal Energy. AIEE Technical Paper 49 186 (Jul. 1949) title page and pp. 1 9.*
Newsweek Clipping (May 1995) of SunCast UV Monitor No Weekly date or page number known!.
Newsweek Clipping (May 1995) of SunCast UV Monitor No Weekly date or page number known .*

Cited By (111)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US6392239B1 (en)1996-12-302002-05-21Jan KuklinskiOptical array converting UV radiation
US6822789B2 (en)1996-12-302004-11-23Jan KuklinskiOptical array converting UV radiation
US6484932B1 (en)1999-04-092002-11-26John P. KinneyMethod and apparatus for communicating ultraviolet (UV) radiation information
DE19941994C1 (en)*1999-09-022001-08-09Andreas Nuske Digital UV dosimeter wrist watch
WO2001018510A1 (en)*1999-09-022001-03-15Andreas NuskeDigital uv-dosimeter wristwatch
US6464405B2 (en)*1999-10-142002-10-15Ocean Design, Inc.Wet-mateable electro-optical connector
US20030150998A1 (en)*2000-04-282003-08-14Minseub ShinDevice and method for ultraviolet radiation monitoring
US20010048081A1 (en)*2000-05-102001-12-06Fuji Xerox Co., LtdPortable information device
US6541775B2 (en)*2000-05-102003-04-01Fuji Xerox Co., Ltd.Portable information device
US20030230725A1 (en)*2002-01-302003-12-18Bravo WongSensor arrangement having a capacitive light sensing circuit
US6803581B2 (en)*2002-07-302004-10-12International Radiation Detectors, Inc.Semiconductor photodiode with integrated microporous filter
US20040021085A1 (en)*2002-07-302004-02-05Prince Chad J.Semiconductor photodiode with integrated microporous filter
US20040155199A1 (en)*2003-01-242004-08-12Wen-Wei SuMobile UV-intensity indicator and use thereof
US20040155172A1 (en)*2003-02-062004-08-12Anuthep Benja-AthonCompact vitamin d-production monitor
US12078870B2 (en)2003-04-152024-09-03Ingeniospec, LlcEyewear housing for charging embedded battery in eyewear frame
US9690121B2 (en)2003-04-152017-06-27Ingeniospec, LlcEyewear supporting one or more electrical components
US8465151B2 (en)2003-04-152013-06-18Ipventure, Inc.Eyewear with multi-part temple for supporting one or more electrical components
US7792552B2 (en)2003-04-152010-09-07Ipventure, Inc.Eyeglasses for wireless communications
EP1500914A1 (en)*2003-07-232005-01-26L'orealDevice for preventing risks of overexposure to harmful solar radiation
FR2858052A1 (en)*2003-07-232005-01-28Oreal DEVICE FOR PREVENTING RISK OF OVEREXPOSURE TO NEAR SUN-RAYS
US20050067580A1 (en)*2003-07-232005-03-31L'orealDevice to prevent the risk of overexposure to harmful solar radiation
US7265358B2 (en)2003-07-232007-09-04L'orealDevice to prevent the risk of overexposure to harmful solar radiation
CN100416238C (en)*2003-07-232008-09-03莱雅公司 Devices to protect against the danger of overexposure to harmful solar radiation
US11204512B2 (en)2003-10-092021-12-21Ingeniospec, LlcEyewear supporting embedded and tethered electronic components
US11243416B2 (en)2003-10-092022-02-08Ingeniospec, LlcEyewear supporting embedded electronic components
US10061144B2 (en)2003-10-092018-08-28Ingeniospec, LlcEyewear supporting embedded electronic components
US20070046887A1 (en)*2003-10-092007-03-01Howell Thomas AEyewear supporting after-market electrical components
US10330956B2 (en)2003-10-092019-06-25Ingeniospec, LlcEyewear supporting electrical components and apparatus therefor
US10345625B2 (en)2003-10-092019-07-09Ingeniospec, LlcEyewear with touch-sensitive input surface
US20050248719A1 (en)*2003-10-092005-11-10Howell Thomas AEvent eyeglasses
US7438410B1 (en)2003-10-092008-10-21Ip Venture, Inc.Tethered electrical components for eyeglasses
US9547184B2 (en)2003-10-092017-01-17Ingeniospec, LlcEyewear supporting embedded electronic components
US7500747B2 (en)2003-10-092009-03-10Ipventure, Inc.Eyeglasses with electrical components
US12164180B2 (en)2003-10-092024-12-10Ingeniospec, LlcEyewear supporting distributed and embedded electronic components
US7581833B2 (en)2003-10-092009-09-01Ipventure, Inc.Eyewear supporting after-market electrical components
US11086147B2 (en)2003-10-092021-08-10Ingeniospec, LlcEyewear supporting electrical components and apparatus therefor
US7621634B2 (en)2003-10-092009-11-24Ipventure, Inc.Tethered electrical components for eyeglasses
US7677723B2 (en)2003-10-092010-03-16Ipventure, Inc.Eyeglasses with a heart rate monitor
US11803069B2 (en)2003-10-092023-10-31Ingeniospec, LlcEyewear with connection region
US11762224B2 (en)2003-10-092023-09-19Ingeniospec, LlcEyewear having extended endpieces to support electrical components
US7760898B2 (en)2003-10-092010-07-20Ip Venture, Inc.Eyeglasses with hearing enhanced and other audio signal-generating capabilities
US20060023158A1 (en)*2003-10-092006-02-02Howell Thomas AEyeglasses with electrical components
US7806525B2 (en)2003-10-092010-10-05Ipventure, Inc.Eyeglasses having a camera
US7922321B2 (en)2003-10-092011-04-12Ipventure, Inc.Eyewear supporting after-market electrical components
US8109629B2 (en)2003-10-092012-02-07Ipventure, Inc.Eyewear supporting electrical components and apparatus therefor
US20050248717A1 (en)*2003-10-092005-11-10Howell Thomas AEyeglasses with hearing enhanced and other audio signal-generating capabilities
US11630331B2 (en)2003-10-092023-04-18Ingeniospec, LlcEyewear with touch-sensitive input surface
US8430507B2 (en)2003-10-092013-04-30Thomas A. HowellEyewear with touch-sensitive input surface
US8434863B2 (en)2003-10-092013-05-07Thomas A. HowellEyeglasses with a printed circuit board
US20050264752A1 (en)*2003-10-092005-12-01Howell Thomas AEyewear supporting after-market electrical components
US8500271B2 (en)2003-10-092013-08-06Ipventure, Inc.Eyewear supporting after-market electrical components
US11536988B2 (en)2003-10-092022-12-27Ingeniospec, LlcEyewear supporting embedded electronic components for audio support
US10310296B2 (en)2003-10-092019-06-04Ingeniospec, LlcEyewear with printed circuit board
US11513371B2 (en)2003-10-092022-11-29Ingeniospec, LlcEyewear with printed circuit board supporting messages
US8905542B2 (en)2003-10-092014-12-09Ingeniospec, LlcEyewear supporting bone conducting speaker
US9033493B2 (en)2003-10-092015-05-19Ingeniospec, LlcEyewear supporting electrical components and apparatus therefor
US9488520B2 (en)2004-04-122016-11-08Ingeniospec, LlcEyewear with radiation detection system
US10060790B2 (en)2004-04-122018-08-28Ingeniospec, LlcEyewear with radiation detection system
US20070186330A1 (en)*2004-04-152007-08-16Howell Thomas AHat with a radiation sensor
US8770742B2 (en)2004-04-152014-07-08Ingeniospec, LlcEyewear with radiation detection system
US11644361B2 (en)2004-04-152023-05-09Ingeniospec, LlcEyewear with detection system
US11326941B2 (en)2004-04-152022-05-10Ingeniospec, LlcEyewear with detection system
US10539459B2 (en)2004-04-152020-01-21Ingeniospec, LlcEyewear with detection system
US7500746B1 (en)2004-04-152009-03-10Ip Venture, Inc.Eyewear with radiation detection system
US10359311B2 (en)2004-04-152019-07-23Ingeniospec, LlcEyewear with radiation detection system
US20050242290A1 (en)*2004-04-302005-11-03May Joe TDistributed UV sensor system and method
US20060131510A1 (en)*2004-04-302006-06-22May Joe TDistributed UV sensor system and method
US7183558B2 (en)2004-04-302007-02-27Electronic Instrumentation And Technology, Inc.Distributed UV sensor system and method
US7057183B2 (en)*2004-04-302006-06-06Electronic Instrumentation And Technology, Inc.Distributed UV sensor system and method
US8337013B2 (en)2004-07-282012-12-25Ipventure, Inc.Eyeglasses with RFID tags or with a strap
US12238494B1 (en)2004-07-282025-02-25Ingeniospec, LlcHead-worn device with connection region
US12140819B1 (en)2004-07-282024-11-12Ingeniospec, LlcHead-worn personal audio apparatus supporting enhanced audio output
US12025855B2 (en)2004-07-282024-07-02Ingeniospec, LlcWearable audio system supporting enhanced hearing support
US12001599B2 (en)2004-07-282024-06-04Ingeniospec, LlcHead-worn device with connection region
US11921355B2 (en)2004-07-282024-03-05Ingeniospec, LlcHead-worn personal audio apparatus supporting enhanced hearing support
US11829518B1 (en)2004-07-282023-11-28Ingeniospec, LlcHead-worn device with connection region
US11644693B2 (en)2004-07-282023-05-09Ingeniospec, LlcWearable audio system supporting enhanced hearing support
US12242138B1 (en)2004-10-122025-03-04Ingeniospec, LlcWireless headset supporting messages and hearing enhancement
US11852901B2 (en)2004-10-122023-12-26Ingeniospec, LlcWireless headset supporting messages and hearing enhancement
WO2006114009A1 (en)*2005-04-282006-11-02Flytec AgUv-measuring device
US11733549B2 (en)2005-10-112023-08-22Ingeniospec, LlcEyewear having removable temples that support electrical components
US12248198B2 (en)2005-10-112025-03-11Ingeniospec, LlcEyewear having flexible printed circuit substrate supporting electrical components
US12345955B2 (en)2005-10-112025-07-01Ingeniospec, LlcHead-worn eyewear structure with internal fan
US12044901B2 (en)2005-10-112024-07-23Ingeniospec, LlcSystem for charging embedded battery in wireless head-worn personal electronic apparatus
US12313913B1 (en)2005-10-112025-05-27Ingeniospec, LlcSystem for powering head-worn personal electronic apparatus
US7543934B2 (en)2006-09-202009-06-09Ipventures, Inc.Eyeglasses with activity monitoring and acoustic dampening
US20090249126A1 (en)*2008-03-252009-10-01Hong Fu Jin Precision Industry (Shen Zhen) Co., Ltd.Testing device for usb i/o board
US8217662B2 (en)*2008-03-252012-07-10Hong Fu Jin Precision Industry (Shenzhen) Co., Ltd.Testing device for USB I/O board
US20100163750A1 (en)*2008-12-312010-07-01Hunwick Iii Bernard BArticle with gradated environmental sensor
US20100163749A1 (en)*2008-12-312010-07-01Hunwick Iii Bernard BBottle with environmental sensor
US8897100B2 (en)2011-05-312014-11-25Triple Threat Enterprises, LlcElectronic timer/sensor to protect skin from overexposure to UV radiation
US9405135B2 (en)2011-09-152016-08-02Ipventure, Inc.Shutter eyewear
US10624790B2 (en)2011-09-152020-04-21Ipventure, Inc.Electronic eyewear therapy
US20140061486A1 (en)*2012-02-212014-03-06Massachusetts Institute Of TechnologySpectrometer Devices
JP2017207496A (en)*2012-02-212017-11-24マサチューセッツ インスティテュート オブ テクノロジーSpectrometer device
US9963271B2 (en)*2012-04-112018-05-08New Medic Era AbDevice and method for determination of safe tanning time
US20150083934A1 (en)*2012-04-112015-03-26Skinplan AbDevice and method for determination of safe tanning time
US11042045B2 (en)2013-03-152021-06-22Ingeniospec, LlcElectronic eyewear and display
US10042186B2 (en)2013-03-152018-08-07Ipventure, Inc.Electronic eyewear and display
US11814315B2 (en)2013-04-152023-11-14Vitro Flat Glass LlcLow iron, high redox ratio, and high iron, high redox ratio, soda-lime-silica glasses and methods of making same
US10737970B2 (en)2013-04-152020-08-11Vitro Flat Glass LlcLow iron, high redox ratio, and high iron, high redox ratio, soda-lime-silica glasses and methods of making same
US9316533B2 (en)2014-08-272016-04-19ECD Holding Company, LLCUltraviolet monitoring device
US9476765B2 (en)2014-08-272016-10-25SkinIO, LLC.Ultraviolet monitoring device
US20160313176A1 (en)*2015-04-212016-10-27Salutron, Inc.User-wearable devices including uv light exposure detector with calibration for skin tone
US10996167B2 (en)*2018-01-102021-05-04Michael KerwinContainer with luminescent sunscreen and closure with illuminator
US20190212270A1 (en)*2018-01-102019-07-11Michael KerwinContainer with luminescent sunscreen and closure with illuminator
US11721183B2 (en)2018-04-122023-08-08Ingeniospec, LlcMethods and apparatus regarding electronic eyewear applicable for seniors
US10777048B2 (en)2018-04-122020-09-15Ipventure, Inc.Methods and apparatus regarding electronic eyewear applicable for seniors
US12365616B2 (en)2020-02-032025-07-22Vitro Flat Glass LlcSoda lime silica glass with high visible light transmittance
US20230280207A1 (en)*2022-03-042023-09-07Central Garden & Pet CompanyPhotochromic pigment detection to determine uv output intensity of a uv illuminating source within a reptile cage
US11899164B1 (en)*2022-11-152024-02-13Jason NeySolar powered digital harvest days counter

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Publication numberPublication date
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WO1996010165A1 (en)1996-04-04

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